The present application relates to the field of physics, especially in the field of flow measurement, in particular a self-rotating flow meter.
In the prior art, turbine flow meters, positive displacement flow meters and Coriolis mass flow meters are the top three flow meter products with best repeatability and accuracy. Still there are shortcomings with those flow meters, such as complex structures, bulky bodies, high prices, poor durability and reliability, narrow measurement range, and uneasy installation and adjustment.
The present invention is to provide a self-rotating flow meter to solve the technical problems of turbine flow meters, positive displacement flow meters and Coriolis mass flow meters in the prior art, such as complex structures, bulky bodies, high prices, poor durability and reliability, narrow measurement range, and uneasy installation and adjustment.
According to one aspect of the present invention, a self-rotating flow meter comprises a housing, a rotating mechanism and a sensor, the housing comprising an inlet port, an outlet port and a chamber between the inlet port and the outlet port, the rotating mechanism being disposed in the chamber and having a rotating shaft as well as a rotating disk that is attached to the rotating shaft, the sensor being disposed in the housing and near the rotating mechanism, wherein the rotating mechanism comprises internal flow passages, the internal flow passages comprising an inflow passage and at least one outflow passage, the inflow passage being located inside the rotating shaft and having a centerline that is coincident with or parallel to the centerline of the rotating shaft; the at least one outflow passage being disposed in the rotating disk, the centerline of any one of the outflow passage(s) in the rotating disk and the centerline of the rotating shaft being in two different planes and having a distance between them, the rotating mechanism being rotated by a measured fluid out of the outflow passage(s) in the rotating disk, and the sensor measuring the rotational speed of the rotating mechanism.
Further, the fluid measured out of the outflow passage in the rotating disk is determined by the following parameters:
Further, the internal flow passages further comprises an intermediate flow passage or a transition zone, the intermediate flow passage or transition zone connecting the inflow passage and the outflow passage(s), the inflow passage flow area being larger than all of the outflow passage flow area combined.
Further, the centerline of any one of the outflow passage(s) in the rotating disk and the centerline of the rotating shaft are perpendicular to or almost perpendicular to each other.
Further, both radial and axial positioning mechanisms are provided between the rotation mechanism and the chamber of the housing.
Further, the radial positioning mechanism comprises a bearing mechanism.
Further, the axial positioning mechanism comprises a clip ring, or a washer, or a plate, or a ball, or a spring-piston system, or a combination of two or more of the above mechanisms.
Further, the axial positioning mechanism comprises a ball and a positioning plate, said positioning plate is installed on the housing, and there is at least one flow passage through the positioning plate, the ball is between the rotating mechanism and the positioning plate, and the center of the ball lies on the centerline of the rotating shaft.
Further, the spring-piston system is installed on the housing, said spring-piston system tends to move the rotating mechanism backward to close the internal flow passages in the rotating mechanism.
The rotating mechanism moves axially in the chamber of the housing, when the rotating mechanism being moved forward by a forward flow of the measured fluid to open the internal flow passages in the rotating mechanism, the forward flow flows out of the outlet passages in the rotating disk to create the rotation of the rotating mechanism; when the rotating mechanism being moved backward by a backward flow of the measured fluid to close the internal flow passages in the rotating mechanism, the backward flow is blocked, and the rotation of the rotating mechanism is stopped.
The housing comprises connecting and sealing members.
The sensor comprises a magnetic sensor, and said rotating mechanism is equipped with at least one magnet.
The self-rotating flow meter further comprising a check valve mechanism, wherein the check valve mechanism prevents a backward flow of the measured fluid through the internal flow passages in the rotating mechanism.
The check valve mechanism comprises a flow passage in the housing and a connecting flow passage in the rotating mechanism, the two flow passages in the housing and in the rotating mechanism are connected when there is a forward flow of the measured fluid, and the two flow passages in the housing and in the rotating mechanism are disconnected when there is a backward flow of the measured fluid.
The housing 21 includes an inflow port 1, an outflow port 2 and a chamber between the two ports. There is a through-hole 59 in the chamber. Of course, the flow meter 20 may be formed of a plurality of housings, including connecting and sealing members that are connected with fluid conduits (used to transfer a fluid to be measured).
The rotating mechanism 50 includes a rotor (a rotating shaft) 54 mounted within the through-hole 59. The rotor 54 is attached with a rotating disk 55 (
Both radial and axial positioning mechanisms are provided between the rotation mechanism 50 and the chamber of the housing 21. The rotating shaft (the rotor) 54 of the rotating mechanism 50 forms a sliding bearing type connection with the through-hole 59. The axial positioning mechanism is provided by connecting members 57 (retaining ring or collar) and 58 (spacer or washer) to allow rotation of the rotating mechanism 50 in the housing chamber, but to restrict its axial movement in the housing chamber. Of course, the rotating mechanism 50 may be an assembly composed of a plurality of parts, and may be connected or positioned by other ways, such as using a rolling bearing connection.
The sensor 40 measures the rotational speed of the rotating mechanism, and its role is similar to the well-known turbine flow meter sensors, for example, a magnetic sensors. The rotating mechanism 50 includes at least one magnet 42 (
When there is a forward flow of the measured fluid, from 1 to 2 as shown in
When there is a forward flow of the measured fluid, from 1 to 2 as shown in
While the above description contains many specific embodiments, it should not be regarded as limitations on the scope of the present invention, but rather as specific exemplifications. Many other variations are likely to be derived from the specific embodiments. For example, the meter shown here can be made of different materials, such as metals, plastics and rubber, and other materials according to application requirements.
In addition, the sensor 40 shown here can be different varieties, the data collecting and processing methods and tools of the sensor can also vary. Other types of sensors can also be used, such as temperature sensors, pressure sensors, etc., to obtain the measured fluid temperature, pressure and density to derive the flow measurement.
Also, the check valve mechanism and bearing mechanism could be different. And the intermediate flow passage or transition zone could be different, as shown in
Therefore, the scope of the present invention should not be defined by the above mentioned specific example, but by the appended claims.
Number | Date | Country | Kind |
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201310697539.2 | Dec 2013 | CN | national |
The present application is a continuation-in-part of International Patent Application PCT/CN2014/001002 filed Nov. 13, 2014, and claims priority of Chinese Patent Application No. 201310697539.2 filed Dec. 17, 2013, both of which applications are incorporated herein in their entireties by reference.
Number | Date | Country | |
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Parent | PCT/CN2014/001002 | Nov 2014 | US |
Child | 15183870 | US |